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Quantification of three DNA Lesions by Mass Spectrometry and Assessment of Their Levels in Tissues of Mice Exposed to Ambient Fine Particulate Matter
Published on: May 29, 2019
Transcriptional inhibition by an oxidized abasic site in DNA
Yingli Wang1, Terry L Sheppard, Silvia Tornaletti
1Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208-3113, USA.
Abstract:
2-Deoxyribonolactone (dL) is an oxidized abasic site in DNA that can be induced by gamma-radiolysis, ultraviolet irradiation, and numerous antitumor drugs. Although this lesion is incised by AP endonucleases, suggesting a base-excision repair mechanism for dL removal, subsequent excision and repair synthesis by DNA polymerase beta is inhibited due to accumulation of a protein-DNA cross-link. This raises the possibility that additional repair pathways might be required to eliminate dL from the genome. Transcription-coupled repair (TCR) is a pathway of excision repair specific to DNA lesions present in transcribed strands of expressed genes. A current model proposes that transcription arrest at the site of DNA damage is required to initiate TCR. In support of this model, a strong correlation between transcription arrest by a lesion in vitro and TCR of the lesion in vivo has been found in most cases analyzed. To assess whether dL might be subject to TCR, we have studied the behavior of bacteriophage T3 and T7 RNA polymerases (T3RNAP, T7RNAP) and of mammalian RNA polymerase II (RNAPII) when they encounter a dL lesion or its "caged" precursor located either in the transcribed or in the nontranscribed strand of template DNA. DNA plasmids containing a specifically located dL downstream of the T3, T7 promoter or the Adenovirus major late promoter were constructed and used for in vitro transcription with purified proteins. We found that both dL and its caged precursor located in the transcribed strand represented a complete block to transcription by T3- and T7RNAP. Similarly, they caused more than 90% arrest when transcription was carried out with mammalian RNAPII. Furthermore, RNAPII complexes arrested at dL were subject to the transcript cleavage reaction mediated by elongation factor TFIIS, indicating that these complexes were stable. A dL in the nontranscribed strand did not block either polymerase.
Insights
2-Deoxyribonolactone (dL), a DNA lesion, blocks transcription by RNA polymerases. This suggests transcription-coupled repair may be necessary for its removal from the genome.
Area of Science:
- Molecular Biology
- DNA Repair
- Biochemistry
Background:
- 2-Deoxyribonolactone (dL) is an oxidized abasic DNA lesion induced by various agents, including radiation and antitumor drugs.
- While AP endonucleases incise dL, subsequent repair is hindered by protein-DNA cross-links, suggesting alternative repair pathways are needed.
- Transcription-coupled repair (TCR) removes lesions from transcribed DNA strands, typically initiated by transcription arrest.
Purpose of the Study:
- To investigate if 2-Deoxyribonolactone (dL) lesions trigger transcription-coupled repair (TCR).
- To examine the impact of dL on different RNA polymerases (RNAPs) when located in transcribed or non-transcribed DNA strands.
Main Methods:
- In vitro transcription assays using bacteriophage T3/T7 RNA polymerases (T3RNAP, T7RNAP) and mammalian RNA polymerase II (RNAPII).
- Construction of DNA plasmids with dL or its precursor positioned downstream of specific promoters.
- Analysis of transcription arrest and transcript cleavage mediated by elongation factor TFIIS.
Main Results:
- Both dL and its precursor completely blocked T3RNAP and T7RNAP transcription when in the transcribed strand.
- Mammalian RNAPII showed over 90% transcription arrest at the dL lesion in the transcribed strand.
- Arrested RNAPII complexes were stabilized by transcript cleavage via TFIIS, indicating TCR potential.
- A dL lesion in the non-transcribed strand did not impede polymerase activity.
Conclusions:
- 2-Deoxyribonolactone (dL) lesions in the transcribed strand effectively halt transcription by multiple RNAPs.
- The transcription arrest and subsequent TFIIS-mediated cleavage suggest dL is a substrate for transcription-coupled repair (TCR).
- This implies TCR may play a crucial role in removing dL from the genome, complementing base-excision repair.
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